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Prediction Model for Personal Thermal Comfort for Naturally Ventilated Smart Buildings

机译:自然通风智能建筑个人热舒适预测模型

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Smart City concept can be realized by smart buildings. For creating smart buildings smart home systems need to be built. Smart home systems should have appliances which can adjust their settings according to the real time conditions. This research paper aims to improve the design of non-air conditioned or naturally ventilated (NV) buildings by determining the conditions for improving the satisfaction in thermal comfort levels of building occupants. For this study various datasets from ASHRAE RP-884 database have been taken from different climate zones and different seasons. For this purpose an optimum feature set is identified which indicates the parameters which impact most on personal thermal comfort level. Supervised machine learning techniques such as Support Vector Machines (SVM) and Naieve Bayes Classifier have been used. For feature selection Boruta Feature Selection Method has been used. The experimental results show that in any climate zone or season, indoor and outdoor temperature and humidity are most important factors in determining thermal comfort. For hot humid climate, air speed is another important factor. The research paper presents a low cost solution for improving thermal comfort of building occupants by determining the minimum number of features.
机译:智能城市概念可以通过智能建筑实现。对于创建智能建筑,需要建立智能家庭系统。智能家居系统应具有可根据实时条件调整其设置的设备。本研究文件旨在通过确定改善占用水平的热舒适程度满意度的条件来改善非空调或天然通风(NV)建筑物的设计。对于这项研究,来自Ashrae RP-884数据库的各个数据集已从不同的气候区和不同的季节中获取。为此目的,识别出最佳特征集,其指示在个人热舒适度上影响最大的参数。已经使用了监督机器学习技术,如支持向量机(SVM)和明智的贝叶斯分类器。对于特征选择Boruta特征选择方法已使用。实验结果表明,在任何气候区或季节,室内和室外温度和湿度都是确定热舒适度的最重要因素。对于热潮气候,空气速度是另一个重要因素。研究论文通过确定最小特征数量来提高建筑物的热舒适性,提高了较低的成本解决方案。

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